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利用干细胞进行基因重编程可在 Alport 综合征中再生肾小球上皮足细胞。

Genetic reprogramming with stem cells regenerates glomerular epithelial podocytes in Alport syndrome.

机构信息

Department of Cancer Biology, University of Texas MD Anderson Cancer Center, Houston, TX, USA

Division of Matrix Biology, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, MA, USA.

出版信息

Life Sci Alliance. 2024 Apr 1;7(6). doi: 10.26508/lsa.202402664. Print 2024 Jun.

Abstract

Glomerular filtration relies on the type IV collagen (ColIV) network of the glomerular basement membrane, namely, in the triple helical molecules containing the α3, α4, and α5 chains of ColIV. Loss of function mutations in the genes encoding these chains (, , and ) is associated with the loss of renal function observed in Alport syndrome (AS). Precise understanding of the cellular basis for the patho-mechanism remains unknown and a specific therapy for this disease does not currently exist. Here, we generated a novel allele for the conditional deletion of in different glomerular cell types in mice. We found that podocytes specifically generate α3 chains in the developing glomerular basement membrane, and that its absence is sufficient to impair glomerular filtration as seen in AS. Next, we show that horizontal gene transfer, enhanced by TGFβ1 and using allogenic bone marrow-derived mesenchymal stem cells and induced pluripotent stem cells, rescues expression and revive kidney function in Col4a3-deficient AS mice. Our proof-of-concept study supports that horizontal gene transfer such as cell fusion enables cell-based therapy in Alport syndrome.

摘要

肾小球滤过依赖于肾小球基底膜的 IV 型胶原 (ColIV) 网络,即在含有 ColIV 的 α3、α4 和 α5 链的三螺旋分子中。编码这些链的基因突变(、和)与 Alport 综合征(AS)中观察到的肾功能丧失有关。对发病机制的细胞基础的精确理解仍然未知,并且目前不存在针对这种疾病的特定治疗方法。在这里,我们在小鼠的不同肾小球细胞类型中生成了一种用于条件性缺失的新型等位基因。我们发现足细胞在发育中的肾小球基底膜中特异性地产生 α3 链,其缺失足以损害肾小球滤过功能,就像在 AS 中看到的那样。接下来,我们表明,水平基因转移(通过 TGFβ1 增强)使用同种异体骨髓来源的间充质干细胞和诱导多能干细胞,可挽救 Col4a3 缺陷型 AS 小鼠中的表达并恢复肾功能。我们的概念验证研究支持水平基因转移(如细胞融合)可实现 Alport 综合征的基于细胞的治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/586b/10985218/4be59ab1aae8/LSA-2024-02664_Fig1.jpg

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